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Published on: February 27, 2018
Reduced Expression of Foxp1 as a Contributing Factor in Huntington's Disease
Anto Sam Crosslee Louis Sam Titus1, Tanzeen Yusuff2, Marlène Cassar3
1Department of Molecular and Cell Biology, University of Texas at Dallas, Richardson, Texas 75080.
Insights
Reduced expression of Foxp1, a neuroprotective protein, in striatal and cortical neurons contributes to Huntington's disease (HD) selectivity. Upregulating Foxp1 isoforms A or D protects neurons, suggesting Foxp1 as a potential therapeutic target for HD.
Area of Science:
- Neuroscience
- Genetics
- Molecular Biology
Background:
- Huntington's disease (HD) is an inherited neurodegenerative disorder characterized by selective neuronal loss in the striatum and cortex.
- The huntingtin protein (htt) mutation leads to polyglutamine expansion, causing neuronal dysfunction and death.
- Foxp1 is a transcription factor selectively expressed in the striatum and cortex, with three major isoforms (A, C, and D) in the brain.
Purpose of the Study:
- To investigate the role of Foxp1 expression and its isoforms in the selective vulnerability of neurons in Huntington's disease.
- To determine if Foxp1 expression is altered in HD and if it confers neuroprotection.
- To explore the mechanism by which Foxp1 exerts its neuroprotective effects.
Main Methods:
- Analysis of Foxp1 isoform expression in R6/2 HD mice and HD patient brains.
- Experimental manipulation of Foxp1 expression (overexpression and knockdown) in neuronal cultures.
- Assessment of neuronal survival and p21 (Cdkn1a) gene expression in response to mutant htt and Foxp1 levels.
Main Results:
- Expression of Foxp1 isoforms A and D is significantly reduced in the striatum and cortex of HD models and patients.
- Mutant htt expression downregulates Foxp1, while increasing Foxp1 A or D protects neurons from mutant htt-induced death.
- Foxp1-mediated neuroprotection involves the transcriptional stimulation of the cell-cycle inhibitory protein p21.
Conclusions:
- The selective vulnerability of striatal and cortical neurons in HD is linked to the reduced expression of the neuroprotective protein Foxp1.
- Foxp1 isoform D, like isoform A, is neuroprotective and downregulated in HD, highlighting its potential therapeutic relevance.
- Targeting Foxp1 and its downstream effector p21 may offer a novel therapeutic strategy for Huntington's disease.
Abstract:
Huntington's disease (HD) is an inherited neurodegenerative disease caused by a polyglutamine expansion in the huntington protein (htt). The neuropathological hallmark of HD is the loss of neurons in the striatum and, to a lesser extent, in the cortex. Foxp1 is a member of the Forkhead family of transcription factors expressed selectively in the striatum and the cortex. In the brain, three major Foxp1 isoforms are expressed: isoform-A (∼90 kDa), isoform-D (∼70 kDa), and isoform-C (∼50 kDa). We find that expression of Foxp1 isoform-A and -D is selectively reduced in the striatum and cortex of R6/2 HD mice as well as in the striatum of HD patients. Furthermore, expression of mutant htt in neurons results in the downregulation of Foxp1 Elevating expression of isoform-A or -D protects cortical neurons from death caused by the expression of mutant htt On the other hand, knockdown of Foxp1 promotes death in otherwise healthy neurons. Neuroprotection by Foxp1 is likely to be mediated by the transcriptional stimulation of the cell-cycle inhibitory protein p21 Consistently, Foxp1 activates transcription of the p21 gene promoter, and overexpression of Foxp1 in neurons results in the elevation of p21 expression. Moreover, knocking down of p21 blocks the ability of Foxp1 to protect neurons from mut-Htt-induced neurotoxicity. We propose that the selective vulnerability of neurons of the striatum and cortex in HD is related to the loss of expression of Foxp1, a protein that is highly expressed in these neurons and required for their survival.SIGNIFICANCE STATEMENT Although the mutant huntingtin gene is expressed widely, neurons of the striatum and cortex are selectively affected in Huntington's disease (HD). Our results suggest that this selectivity is attributable to the reduced expression of Foxp1, a protein expressed selectively in striatal and cortical neurons that plays a neuroprotective role in these cells. We show that protection by Foxp1 involves stimulation of the p21 (Cdkn1a) gene. Although three major Foxp1 isoforms (A, C, and D) are expressed in the brain, only isoform-A has been studied in the nervous system. We show that isoform-D is also expressed selectively, neuroprotective and downregulated in HD mice and patients. Our results suggest that Foxp1 might be an attractive therapeutic target for HD.
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